Scroll compressor including a shell having an inlet tube for drawing a refrigerant, and an outlet tube for discharging the compressed refrigerant, a compressor part arranged in an upper portion of the shell having an inlet hole for drawing refrigerant flowed through the inlet tube for compressing the refrigerant flowed through the inlet hole, a motor part arranged in a lower portion of the shell for transmission of a driving force for operating the compressor part, and a main frame having an edge arranged adjoined to a baffle, which baffle is provided for splitting the refrigerant flowed into the shell through the inlet tube into a flow for the compressor part and a flow for the motor part, and which edge has a curved guide surface extended to the inlet hole of the compressor part for forming a refrigerant flow passage together with the baffle, thereby improving performance of the compressor by preventing additional pressure loss and temperature rise.
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1. A compressor comprising:
a shell having an inlet tube for drawing a refrigerant, and an outlet tube for discharging the compressed refrigerant; a compressor part arranged in an upper portion of the shell having an inlet hole for drawing refrigerant flowed through the inlet tube for compressing the refrigerant flowed through the inlet hole; a motor part arranged in a lower portion of the shell for transmission of a driving force for operating the compressor part; and, a main frame having an edge arranged adjoined to a baffle, the baffle provided for splitting the refrigerant flowed into the shell through the inlet tube into a flow for the compressor part and a flow for the motor part, and the edge having a curved guide surface extended to the inlet hole of the compressor part for forming a refrigerant flow passage together with the baffle, wherein the guide surface has a radius of curvature set ti be equal to a distance from the edge of the main frame to the inlet hole.
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1. Field of the Invention
The present invention relates to a scroll compressor, and more particularly, to a refrigerant inlet of the scroll compressor.
2. Background of the Related Art
In general, the scroll compressor is used for compressing a gas by means of one pair of opposite scrolls, and employed mostly in a room air conditioner or a car for compressing a refrigerant gas owing to a high efficiency, low noise, small size and light weight.
Referring to
Referring to
This refrigerant flow can be explained clearly with reference to FIG. 3. The refrigerant entered into the shell 1 through the inlet tube 1a passes by the inlet hole 40 owing to a geometry of the flow structure explained before in a process the refrigerant flows in a vertical direction guided by the baffle 60 and the main frame 30. Accordingly, the refrigerant flow to the inlet hole 40 is not smooth, but enters into the compression chamber 13 formed by respective scrolls 11 and 12 through the inlet hole 40 after the refrigerant flows to the upper portion of the shell 1. Consequently, there is collision of the refrigerant flow passing by the inlet 40 and rising upward and the refrigerant flow heated in the process flowing around the motor, to cause a turbulent flow, that causes an additional pressure loss. And, the refrigerant absorbs heat from the main frame 30 in an extended flow path, to cause an additional temperature rise. At the end, since the additional pressure loss and the additional temperature rise interfere a smooth entrance of the refrigerant into the inlet hole 40, resulting in overheating of the refrigerant, an overall compression efficiency of the compressor is deteriorated.
Accordingly, the present invention is directed to a compressor that substantially obviates one or more of the problems due to limitations and disadvantages of the related art.
An object of the present invention is to provide a compressor which can minimize a pressure loss and a temperature rise of a refrigerant while various components of the compressor are cooled down smoothly.
Additional features and advantages of the invention will be set forth in the description which follows, and in part will be apparent from the description, or may be learned by practice of the invention. The objectives and other advantages of the invention will be realized and attained by the structure particularly pointed out in the written description and claims hereof as well as the appended drawings.
To achieve these and other advantages and in accordance with the purpose of the present invention, as embodied and broadly described, the Scroll compressor including a shell having an inlet tube for drawing a refrigerant, and an outlet tube for discharging the compressed refrigerant, a compressor part arranged in an upper portion of the shell having an inlet hole for drawing refrigerant flowed through the inlet tube for compressing the refrigerant flowed through the inlet hole, a motor part arranged in a lower portion of the shell for transmission of a driving force for operating the compressor part, and a main frame having an edge arranged adjoined to a baffle, which baffle is provided for splitting the refrigerant flowed into the shell through the inlet tube into a flow for the compressor part and a flow for the motor part, and which edge has a curved guide surface extended to the inlet hole of the compressor part for forming a refrigerant flow passage together with the baffle, thereby improving performance of the compressor by preventing additional pressure loss and temperature rise.
The guide surface preferably has a radius of curvature set to be equal to a distance from the edge of the main frame to the inlet hole.
It is to be understood that both the foregoing general description and the following detailed description are exemplary and explanatory and are intended to provide further explanation of the invention as claimed.
The accompanying drawings, which are included to provide a further understanding of the invention and are incorporated in and constitute a part of this specification, illustrate embodiments of the invention and together with the description serve to explain the principles of the invention:
In the drawings:
Reference will now be made in detail to the preferred embodiments of the present invention, examples of which are illustrated in the accompanying drawings. In explanations of the present invention, identical components will be given the same names and reference symbols, and explanations of which will be omitted.
Referring to
In the meantime, referring to
The operation of the compressor of the present invention will be explained with reference to FIGS. 4∼6.
The refrigerant entered into the shell 1 through the inlet tube 1a via the evaporator(not shown) flows into respective compression chambers 13 between respective scrolls 11 and 12 through the inlet hole 40a in communication with the scrolls 11 and 12. In this state, the rotating scroll 12 is rotated according to rotation of the rotating shaft 50 coupled to the rotating scroll 12, and the laps 11a and 12a on respective scrolls 11 and 12, maintaining a close contact, compresses the refrigerant in an inside of the scrolls 11 and 12. The compressed refrigerant is discharged to the discharge chamber 14 through an outlet hole 11b in the stationary scroll 11, and therefrom to the condenser(not shown) through an outlet tube 1b. Then, the compressed refrigerant is supplied to the condenser as the foregoing suction, compression and discharge processes are repeated in a sequence.
In this instance, as shown in
Thus, the upward refrigerant flow split at the baffle 160 flows along the guide surface 131 and enters into the inlet hole 40a directly, i.e., the upward refrigerant flow passing by the inlet hole 40 is reduced sharply, and the unnecessary upward refrigerant flow to the upper portion of the shell 1 is prevented. Moreover, the smooth upward refrigerant flow permits a smooth downward refrigerant flow back into the inlet hole 40 without interference after cooling the motor. And, the smooth and direct refrigerant flow into the inlet hole 40a permits to prevent the additional absorption of heat from the main frame 130. The table shown below is a result of an analysis of the refrigerant flow obtained according to the present invention.
The Related Art | The Present Invention | ||
ΔT(°C C.) | 13.8 | 10.8 | |
ΔPloss(Pa) | 288 | 69.8 | |
Where, ΔT denotes a temperature difference of the refrigerant entered into the shell 1, and ΔPloss denotes a pressure loss of the refrigerant flowing through the shell 1. That is, as can be known from the table 1, in comparison to the related art main frame 30, the main frame 130 of the present invention can reduce an overall pressure loss by approx. 75%, and the refrigerant temperature difference by approx. 3°C C. Such reduction of pressure loss and temperature rise improves an overall volumetric efficiency of the compressor by approx. one %, resulting to provide an improved compression performance, actually.
As has been explained, the compressor of the present invention has the following advantages.
The formation of a curved guide surface at an edge of the main frame permits a smooth refrigerant flow into an inlet, and to reduce absorption of a heat from the main frame. Prevention of such additional pressure loss and temperature rise of the refrigerant permits to minimize the pressure loss and the temperature rise of the refrigerant even though components of the compressor are cooled adequately, thereby improving a performance of the compressor.
It will be apparent to those skilled in the art that various modifications and variations can be made in the compressor of the present invention without departing from the spirit or scope of the invention. Thus, it is intended that the present invention cover the modifications and variations of this invention provided they come within the scope of the appended claims and their equivalents.
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